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Utility of a thermal-based two-source energy balance model for estimating surface fluxes over complex landscapes

机译:用于估算复杂景观的表面通量的基于热基两源能量平衡模型的效用

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Many landscapes are comprised of a variety of vegetation types with different canopy structure, rooting depth, physiological characteristics, including response to environmental stressors, etc. Even in agricultural regions, different management practices, including crop rotations, irrigation scheduling, planting density, seed varieties, and other factors result in complex patterns in vegetation growth stages, canopy cover, canopy architecture and cropping densities. This variability at the canopy, field and landscape scale, makes it very challenging for quantifying spatially-distributed surface fluxes. This paper describes a robust but relatively simple thermal-based energy balance model that parameterizes the key soil/substrate and vegetation exchange processes affecting the radiative balance and turbulent energy transport with the overlying atmosphere. The thermal-based model, called the Two-Source Energy Balance (TSEB) model solves for the soil/substrate and canopy temperatures that achieves a balance in the radiation and turbulent heat flux exchange with the lower atmosphere for the soil/substrate and vegetation elements. The TSEB scheme permits interaction between soil/substrate and canopy elements which are both coupled to the atmosphere via the canopy-air temperature; this canopy-air temperature is highly correlated to the aerodynamic surface temperature used in computing surface sensible heat flux. As a result, the TSEB modeling framework is applicable to a wide range of atmospheric and canopy cover conditions. An overview of recent applications of the TSEB modeling framework to a variety of agricultural landscapes is presented.
机译:许多景观由各种植被类型组成,各种植被类型具有不同的树冠结构,生根深度,生理特性,包括对环境压力源的反应等。即使在农业区域,不同的管理实践,包括作物轮换,灌溉调度,种植密度,种子品种等因素导致植被生长阶段,冠层覆盖,冠层架构和裁剪密度的复杂模式。这种在树冠,场和横向量表上的变化使得对量化空间分布的表面通量非常具有挑战性。本文介绍了一种坚固但相对简单的热基能量平衡模型,可以参数化键土/基板和植被交换过程,影响覆盖气氛的辐射平衡和湍流能量传输。称为双源能量平衡(TSEB)模型的基于热基模型解决土壤/基板和冠层温度,以实现辐射和湍流热通量交换的平衡与土壤/基板和植被元素的较低气氛。 TSEB方案允许通过顶篷空气温度耦合到大气的土壤/基板和冠层元件之间的相互作用;该篷布空气温度与用于计算表面显热通量的空气动力学表面温度高度相关。结果,TSEB建模框架适用于各种大气和遮篷覆盖条件。提出了TSEB建模框架对各种农业景观的最新应用概述。

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